Abstract
Basalt fiber (BF) reinforced PLA composites are limited by poor interfacial adhesion due to the chemically inert BF surface. This study addresses this challenge through a multi-stage surface nanoengineering strategy in which BF was first functionalized with silane (SBF), followed by the grafting of Ti3C2Tx MXene and MMT nanoparticles using a polydopamine (PDA) mediator. The optimal fiber loading (5 wt%) was established using silane-treated BF, after which the synergistic effects of the nanoparticle coatings were evaluated. Comprehensive structural, thermal, and mechanical characterization demonstrated that PMSBF5 achieved a 10.26% increase in tensile strength and a 54.25% rise in elongation at break, while PMMSBF5 further enhanced ductility to 25.52% (171.20% improvement). PMMSBF5 also showed a 68.44% increase in flexural strength, a 116.53% rise in flexural modulus, and a 77.65% improvement in storage modulus. Tribological testing revealed a 5.76% reduction in COF and a 53.10% decrease in wear rate for PMMSBF5. These results confirm that PDA-mediated nanoengineering significantly improves interfacial stress transfer, positioning these composites as strong candidates for high-performance automotive and biomedical applications.
| Original language | English |
|---|---|
| Article number | 102866 |
| Journal | Composites Communications |
| Volume | 65 |
| DOIs | |
| State | Published - Aug 2026 |
Keywords
- Basalt fiber
- MMT
- MXene
- Mechanical properties
- Poly (lactic acid)
- Tribological properties
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